转基因插入的遗传背景可以影响斑马鱼的神经发育。

IF 5.1 3区 生物学 Q2 GENETICS & HEREDITY
Genetics Pub Date : 2025-09-17 DOI:10.1093/genetics/iyaf195
Anna J Moyer, Jessica A Chrabasz, Alexia Barcus, Ji Cheng, Mary E S Capps, Robert L Lalonde, Christian Mosimann, Summer B Thyme
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引用次数: 0

摘要

Gal4/UAS系统用于模型生物在精确的细胞类型中过度表达靶基因,并依赖于产生转基因Gal4驱动系。在斑马鱼中,Tg(elavl3:KalTA4) (HuC) Gal4细胞系驱动神经元中的稳健表达。我们观察到Tg(elavl3:KalTA4)斑马鱼幼虫与野生型兄弟姐妹相比,鱼鳔缺陷的患病率增加,这促使我们研究转基因幼虫是否表现出额外的神经行为表型。Tg(elavl3:KalTA4)幼虫表现出脑活动、脑形态和行为的改变,包括后脑大小增加和小脑活动减少。大量RNA-seq分析显示转录组失调,并表明与分化神经元相比,神经元祖细胞的比例增加。为了了解这些表型是来自Gal4毒性还是来自与转基因相关的位置效应,我们使用经济低通全基因组测序将tol2介导的插入位点定位到8号染色体。邻近基因gadd45ga(一种已知的细胞周期调节因子)的表达减少与增殖增加一致,并提示了位置效应的作用。创建替代泛神经元系的挑战包括elavl3启动子的长度(超过8kb)和使用传统转基因方法的随机插入。为了促进替代系的产生,我们克隆了5个神经元启动子(atp6v0cb,较小的elavl3, rtn1a, sncb和stmn1b),范围从1.7 kb到4.3 kb,并使用Tol2和基于phiC31整合酶的pIGLET系统创建了KalTA4系。我们的研究强调了在新的转基因品系中使用适当的遗传控制和询问潜在的位置效应的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Genetic context of transgene insertion can influence neurodevelopment in zebrafish.

The Gal4/UAS system is used across model organisms to overexpress target genes in precise cell types and relies on generating transgenic Gal4 driver lines. In zebrafish, the Tg(elavl3:KalTA4) (HuC) Gal4 line drives robust expression in neurons. We observed an increased prevalence of swim bladder defects in Tg(elavl3:KalTA4) zebrafish larvae compared to wildtype siblings, which prompted us to investigate whether transgenic larvae display additional neurobehavioral phenotypes. Tg(elavl3:KalTA4) larvae showed alterations in brain activity, brain morphology, and behavior, including increased hindbrain size and reduced activity of the cerebellum. Bulk RNA-seq analysis revealed dysregulation of the transcriptome and suggested an increased ratio of neuronal progenitor cells compared to differentiated neurons. To understand whether these phenotypes derive from Gal4 toxicity or from positional effects related to transgenesis, we used economical low-pass whole genome sequencing to map the Tol2-mediated insertion site to chromosome eight. Reduced expression of the neighboring gene gadd45ga, a known cell cycle regulator, is consistent with increased proliferation and suggests a role for positional effects. Challenges with creating alternative pan-neuronal lines include the length of the elavl3 promoter (over 8 kb) and random insertion using traditional transgenesis methods. To facilitate the generation of alternative lines, we cloned five neuronal promoters (atp6v0cb, smaller elavl3, rtn1a, sncb, and stmn1b) ranging from 1.7 kb to 4.3 kb and created KalTA4 lines using Tol2 and the phiC31 integrase-based pIGLET system. Our study highlights the importance of using appropriate genetic controls and interrogating potential positional effects in new transgenic lines.

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来源期刊
Genetics
Genetics GENETICS & HEREDITY-
CiteScore
6.90
自引率
6.10%
发文量
177
审稿时长
1.5 months
期刊介绍: GENETICS is published by the Genetics Society of America, a scholarly society that seeks to deepen our understanding of the living world by advancing our understanding of genetics. Since 1916, GENETICS has published high-quality, original research presenting novel findings bearing on genetics and genomics. The journal publishes empirical studies of organisms ranging from microbes to humans, as well as theoretical work. While it has an illustrious history, GENETICS has changed along with the communities it serves: it is not your mentor''s journal. The editors make decisions quickly – in around 30 days – without sacrificing the excellence and scholarship for which the journal has long been known. GENETICS is a peer reviewed, peer-edited journal, with an international reach and increasing visibility and impact. All editorial decisions are made through collaboration of at least two editors who are practicing scientists. GENETICS is constantly innovating: expanded types of content include Reviews, Commentary (current issues of interest to geneticists), Perspectives (historical), Primers (to introduce primary literature into the classroom), Toolbox Reviews, plus YeastBook, FlyBook, and WormBook (coming spring 2016). For particularly time-sensitive results, we publish Communications. As part of our mission to serve our communities, we''ve published thematic collections, including Genomic Selection, Multiparental Populations, Mouse Collaborative Cross, and the Genetics of Sex.
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